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首页> 外文期刊>Clinical and experimental pharmacology & physiology >Large-scale simulation of the human arterial tree.
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Large-scale simulation of the human arterial tree.

机译:人体动脉树的大规模仿真。

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1. Full-scale simulations of the virtual physiological human (VPH) will require significant advances in modelling, multiscale mathematics, scientific computing and further advances in medical imaging. Herein, we review some of the main issues that need to be resolved in order to make three-dimensional (3D) simulations of blood flow in the human arterial tree feasible in the near future. 2. A straightforward approach is computationally prohibitive even on the emerging petaflop supercomputers, so a three-level hierarchical approach based on vessel size is required, consisting of: (i) a macrovascular network (MaN); (ii) a mesovascular network (MeN); and (iii) a microvascular network (MiN). We present recent simulations of MaN obtained by solving the 3D Navier-Stokes equations on arterial networks with tens of arteries and bifurcations and accounting for the neglected dynamics through proper boundary conditions. 3. A multiscale simulation coupling MaN-MeN-MiN and running on hundreds of thousands of processors on petaflop computers will require no more than a few CPU hours per cardiac cycle within the next 5 years. The rapidly growing capacity of supercomputing centres opens up the possibility of simulation studies of cardiovascular diseases, drug delivery, perfusion in the brain and other pathologies.
机译:1.虚拟生理人(VPH)的全面仿真将需要在建模,多尺度数学,科学计算以及医学成像方面取得重大进展。在此,我们回顾了一些需要解决的主要问题,以便在不久的将来使人体动脉树中的血流的三维(3D)模拟可行。 2.即使在新兴的petaflop超级计算机上,直接的方法在计算上也是禁止的,因此需要基于容器大小的三级分层方法,包括:(i)大型血管网络(MaN); (ii)中血管网络(MeN); (iii)微血管网络(MiN)。我们目前通过对具有数十条动脉和分叉的动脉网络上的3D Navier-Stokes方程进行求解并通过适当的边界条件解决被忽略的动力学问题,来获得3N Navier-Stokes方程的最新仿真。 3.在接下来的5年中,耦合MaN-MeN-MiN并在petaflop计算机上成千上万个处理器上运行的多尺度模拟将不超过几个CPU小时。超级计算中心容量的迅速增长为心血管疾病,药物输送,脑部灌注和其他病理学的模拟研究提供了可能性。

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